A composite electrolyte for preparing the corrosion-resistant surface of petroleum pipelines and a method for preparing the corrosion-resistant layer of petroleum pipelines by ultrasonic-assisted electrodeposition
An oil pipeline, ultrasonic-assisted technology, applied in the field of electrolysis or electrophoresis, can solve the problems of difficult to obtain regular micro-nano structures, difficult process control, short service life, etc., to promote nickel deposition, reduce agglomeration, The effect of improving corrosion resistance
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Embodiment 1
[0062] The present embodiment makes the stainless steel surface superhydrophobic structure through the following steps:
[0063] (1) Preparation of composite electrolyte: add nickel sulfate, nickel chloride, sodium hydrogen phosphate, sodium sulfate and citric acid to deionized water, stir the solution evenly by magnetic force, mix sodium lauryl sulfate and nano-silicon carbide After mixing, add it to the solution in the magnetic stirring, mix evenly to prepare the electrolyte, the concentration of nickel sulfate in the electrolyte is 150g / L, the concentration of nickel chloride in the electrolyte is 50g / L, sodium hydrogen phosphate in the electrolyte The concentration in the electrolyte is 30g / L, the concentration of sodium lauryl sulfate in the electrolyte is 0.1g / L, the concentration of nano-silicon carbide in the electrolyte is 6g / L, and the concentration of sodium sulfate in the electrolyte is 10g / L, citric acid makes the pH value of the electrolyte solution 4, and the p...
Embodiment 2
[0071] The differences between this embodiment and Embodiment 1 are:
[0072] The concentration of each raw material component in the electrolyte in step (1) is:
[0073] Nickel sulfate 175g / L
[0074] Nickel chloride 65g / L
[0075] Sodium hydrogen phosphate 45g / L
[0076] Sodium Lauryl Sulfate 0.15g / L
[0077] Nano silicon carbide 6g / L
[0078] Sodium sulfate 20g / L
[0079] The consumption of citric acid makes the pH value of composite electrolyte solution be 4,
[0080] In step (3), the concentration of sodium phosphate in the first mixed solution is 50g / L, the concentration of sodium hydroxide in the first mixed solution is 15g / L, and the concentration of sodium carbonate in the first mixed solution is 40g / L L;
[0081] In step (4), the concentration of rhodin in the second mixed solution was 0.75 g / L, and the concentration of hexatropine in the second mixed solution was 0.3 g / L.
[0082] After the modified stainless steel, the static contact angle of deionized wate...
Embodiment 3
[0084] The differences between this embodiment and Embodiment 1 are:
[0085] The concentration of each raw material component in the electrolyte in step (1) is:
[0086] Nickel sulfate 200g / L
[0087] Nickel chloride 80g / L
[0088] Sodium hydrogen phosphate 60g / L
[0089] Sodium Lauryl Sulfate 0.2g / L
[0090] Nano silicon carbide 6g / L
[0091] Sodium sulfate 30g / L
[0092] The consumption of citric acid makes the pH value of composite electrolyte solution be 4,
[0093] In step (3), the concentration of sodium phosphate in the first mixed solution is 70g / L, the concentration of sodium hydroxide in the first mixed solution is 20g / L, and the concentration of sodium carbonate in the first mixed solution is 45g / L L;
[0094] In step (4), the concentration of rhodin in the second mixed solution is 1 g / L, and the concentration of hexatropine in the second mixed solution is 0.5 g / L.
[0095] After the modified stainless steel, the static contact angle of deionized water on t...
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